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Transport properties and direct methanol fuel cell performance of sulfonated poly (ether ether ketone)/Cloisite/triaminopyrimidine nanocomposite polymer electrolyte membrane at moderate temperature

机译:磺化聚醚醚酮/叶绿素/三氨基嘧啶纳米复合高分子电解质膜在适度温度下的输运性质和直接甲醇燃料电池性能。

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摘要

This paper presents an investigation on the transport properties represented by proton conductivity and methanol permeability of the sulfonated poly (ether ether ketone) (SPEEK) nanocomposite membranes filled with Cloisite 15A~R clay (CC) compatibilized with 2,4,6-triaminopyrimidine (TAP) under various temperatures. The membranes were prepared through sulfonation of PEEK, followed by the formation of polymer composite dope by using solution intercalation and membrane casting. The composite membrane properties were evaluated using H NMR, field emission scanning electron microscope (FESEM), AC impedance spectroscopy and methanol diffusion test cell. The methanol permeability increased with the rise in temperature and reached a value of 0.52 × 10~(-6) cm~2 s~(-1) at 60 °C; which coincided with proton conductivity of 47.10 mS cm~(-1) and a methanol selectivity of 9.1 × 10~4 S s cm~(-3). The methanol permeability was found to be lower than that of Nafion~R 117 membrane at all investigated temperatures. The nanocomposite SPEEK membranes were tested in a direct methanol fuel cell (DMFC), and the membrane denoted as SPEEK/CC2.5/TAP5.0 achieved a power density of 54.93 mW cm~(-2) at 60 °C The results of this study suggest that SPEEK/CC2.5/TAP5.0 nanocomposite membrane has a potential to be an alternative polymer electrolyte for DMFC application.
机译:本文研究了以2,4,6-三氨基嘧啶增容的Cloisite 15A〜R粘土(CC)填充的磺化聚醚醚酮(SPEEK)纳米复合膜的质子电导率和甲醇渗透性所代表的传输性能。 TAP)在各种温度下。通过PEEK的磺化制备膜,然后通过溶液插层和膜流延形成聚合物复合涂料。使用1 H NMR,场发射扫描电子显微镜(FESEM),AC阻抗谱和甲醇扩散测试池评估了复合膜的性能。甲醇的渗透率随温度的升高而增加,在60°C时达到0.52×10〜(-6)cm〜2 s〜(-1)。质子电导率为47.10 mS cm〜(-1),甲醇选择性为9.1×10〜4 S s cm〜(-3)。在所有研究温度下,甲醇渗透率均低于Nafion〜R 117膜。在直接甲醇燃料电池(DMFC)中测试了纳米复合SPEEK膜,该膜SPEEK / CC2.5 / TAP5.0在60°C时的功率密度为54.93 mW cm〜(-2)。这项研究表明,SPEEK / CC2.5 / TAP5.0纳米复合膜具有成为DMFC应用的替代聚合物电解质的潜力。

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